Member of Technical Staff (RecSys)
AI Summary
Design and build the recommendation system for a UGC gaming platform, from candidate retrieval through final ranking, including the full data pipeline, personalization models, and evaluation infrastructure.
About this role
About Astrocade
Astrocade is a UGC gaming platform where anyone can turn an idea into a playable, shareable game in days, not months. Think YouTube, but for games. We've grown to more than 20 million users within just a few months of launch, and we're only getting started. Backed by Sequoia, NVIDIA, and Google, Astrocade was founded by Amir Sadeghian (Stanford PhD), Ali Sadeghian (Ex-Google Research), and Fei-Fei Li (Godmother of AI). We're building the infrastructure for a new era of interactive entertainment.
About the Role
Our recommendation system doesn't exist yet, and it needs to. We have a large and fast-growing catalog of games, millions of users, and new content being created every day. What you show someone, and when, is the difference between a session that lasts two minutes and one that lasts two hours. As our RecSys founding member, you'll own this problem end-to-end - set the architecture, build the foundation, and grow it from rule-based systems to deep learning. The decisions made now will shape how discovery works on the platform for years.
You'll report to the CTO, and work directly with the co-founders. This is a 0 to 1 build with full ownership.
What You'll Do
Design and build the systems that decide which games surface to which players, from candidate retrieval through final ranking
Own the full data pipeline - ingestion, feature engineering, training data construction, and low-latency serving
Build personalization systems and models that adapt to user behavior, preferences, and context over time
Build eval infrastructure to measure recommendation quality: offline metrics, online experiments, and business outcomes
Run A/B tests and translate results into concrete system improvements
Instrument the recommendation stack deeply so the team can move fast with confidence
You'd Be a Great Fit If You:
Have 4-7+ years of experience in recommendation systems, ML engineering, or applied ML in a consumer context
Have built ranking or personalization systems end-to-end - feeds, video, gaming, or similar
Experience running recommendation evals end-to-end (offline + online)
Understand the full stack - data pipelines, feature stores, model training, and serving
Are comfortable making architectural decisions on a greenfield system without much scaffolding
Are self-directed and energized by ownership, not just execution
Bonus Points
Experience at companies with large-scale consumer recommendation systems (YouTube, Netflix, TikTok, Instagram, LinkedIn, Twitter/X)
Familiarity with both rule-based and deep learning approaches, and when to use each
Background in UGC or creator platforms where content is high-volume and fast-changing
Compensation & Benefits
Competitive base + equity + bonus
Health, dental, and vision coverage
Lunch provided daily
Join us to help build the future of interactive entertainment.
Skills
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